Supramolecular and Biomaterials Chemistry and ‡Metals in Catalysis, Biomimetics, and Inorganic Materials, Leiden University, Leiden Institute of Chemistry , P.O. Box 9502, 2300 RA Leiden, The Netherlands.
Nano Lett. 2017 Dec 13;17(12):7980-7988. doi: 10.1021/acs.nanolett.7b04466. Epub 2017 Dec 4.
Ethene is a highly diffusive and relatively unreactive gas that induces aging responses in plants in concentrations as low as parts per billion. Monitoring concentrations of ethene is critically important for transport and storage of food crops, necessitating the development of a new generation of ultrasensitive detectors. Here we show that by functionalizing graphene with copper complexes biologically relevant concentrations of ethene and of the spoilage marker ethanol can be detected. Importantly, in addition these sensors provide us with important insights into the interactions between molecules, a key concept in chemistry. Chemically induced dipole fluctuations in molecules as they undergo a chemical reaction are harvested in an elegant way through subtle field effects in graphene. By exploiting changes in the dipole moments of molecules that occur upon a chemical reaction we are able to track the reaction and provide mechanistic insight that was, until now, out of reach.
乙烯是一种具有高扩散性和相对低反应性的气体,即使在十亿分之几的浓度下,也能诱导植物衰老。监测乙烯的浓度对于粮食作物的运输和储存至关重要,这就需要开发新一代的超灵敏探测器。在这里,我们展示了通过用铜配合物功能化石墨烯,可以检测到生物相关浓度的乙烯和变质标记物乙醇。重要的是,除了这些传感器,它们还为我们提供了分子相互作用的重要见解,这是化学中的一个关键概念。在化学反应过程中,分子的化学诱导偶极子波动通过石墨烯中的微妙场效应以优雅的方式被捕获。通过利用化学反应过程中分子偶极矩的变化,我们能够跟踪反应,并提供以前无法获得的机制见解。